TECHNICAL FIELD
[0001] Embodiments of the present invention relate to aircraft leading edge apparatuses,
for example, variable camber leading edge flaps, and corresponding methods.
BACKGROUND
[0002] Modem aircraft often use a variety of high lift leading and trailing edge devices
to improve high angle of attack performance during various phases of flight, for example,
takeoff and landing. One such device is a leading edge Krueger flap, shown schematically
in Figures 1A and 1B. Figure 1A schematically illustrates a cross-section through
a wing 10 having a Krueger flap 22 stowed proximate to the bottom surface of the wing
10. With the Krueger flap 22 in the stowed position, the wing 10 is in a low drag
configuration that is suitable for cruise and other low angle of attack operations.
Figure 1 B shows the Krueger flap 22 after being rotated and extended forward to create
an extension of the leading edge 12 of the wing 10. When the Krueger flap 22 is in
this extended position, it improves the air flow characteristics over the wing 10
at high angles of attack, allowing the wing 10 to operate at higher angles of attack
without stalling.
[0003] When the Krueger flap 22 is in the extended position, it may be separated from the
leading edge 12 of the wing 10 by a gap 40. A shortcoming of this arrangement is that
while the gap 40 can allow the wing to operate at higher angles of attack, it can
also create more drag than a configuration with little or no gap. Accordingly, a Krueger
flap arrangement having a gapped extended position may be optimal for the landing
phase of flight, but not for the takeoff phase during which a lower drag configuration
is desired. Because Krueger flaps typically have which a lower drag configuration
is desired. Because Krueger flaps typically have only a retracted and an extended
position, the extended position is typically optimized for landing performance.
[0004] One approach addressing this drawback is to move the Krueger flap to an intermediate
position during take-off. When the Krueger flap is in the intermediate position, it
is extended, but positioned against the leading edge 12 to seal the gap 40, as indicated
by dashed lines in Figure 1B. Further details of such an arrangement are provided
in U.S. Patent Nos. 5,158,252 and 6,375,126.
[0005] One feature of existing three-position Krueger flap arrangements is that they include
a single drive tube or actuator coupled to a complex mechanical linkage. A drawback
of this feature is that it can increase the weight of the leading edge device and/or
reduce the reliability of the leading edge device. A further drawback is that even
though the linkage is complex, it may not be capable of positioning the Krueger flap
precisely in the most aerodynamically desirable positions. Accordingly, the arrangement
may not be aerodynamically efficient, and increasing the efficiency of the arrangement
may further increase the complexity and weight of the leading edge device.
SUMMARY
[0006] The present disclosure is directed generally toward aircraft leading edge apparatuses
and corresponding methods. One aspect of the invention is directed toward an aircraft
system that can include an airfoil and a corresponding leading edge device. The leading
edge device can include a flow surface, a first link coupled between the flow surface
and the airfoil, and a second link coupled to the first link. The system can further
include a first actuator coupled to the first link to move the first link relative
to the airfoil, and a second actuator coupled between the first and second links to
move at least one link relative to the other.
[0007] In other embodiments, the airfoil can include a leading edge and a lower surface.
The leading edge device can include a flow surface having a trailing edge, and can
be movable among a retracted position, at least one first extended position, and a
second extended position. In the retracted position, the flow surface can be positioned
generally behind the leading edge of the airfoil to form a portion of the lower surface
of the airfoil. In the at least one first extended position, at least a portion of
the flow surface can be positioned to form an extension of the leading edge with a
first distance between the trailing edge of the flow surface and the leading edge
of the airfoil. In the second extended position, at least a portion of the flow surface
can be positioned to form an extension of the leading edge with no distance or a second
distance (smaller than the first distance) between the trailing edge of the flow surface
and the leading edge of the airfoil. The system can still further include a first
actuator and a second actuator. The first actuator can be operatively coupled to the
leading edge device to move the leading edge device between the retracted and the
at least one first extended position. The second actuator can be operatively coupled
to the leading edge device to move the leading edge device between the at least one
first extended position and the second extended position.
[0008] In another aspect of the invention, a method for making an aircraft system can include
providing an airfoil having a leading edge, a lower surface, and multiple attachment
points. The airfoil can be operatively couplable to a first leading edge device at
the multiple attachment points. The first leading edge device can have a first number
of extended positions. The method can further include operatively coupling a second
leading edge device to the airfoil via the attachment points. The second leading edge
device can have a second number of extended positions, the second number of extended
positions being greater than the first number of extended positions.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
Figure 1A is a partially schematic illustration of a Krueger flap in a retracted position
in accordance with the prior art.
Figure 1B is a partially schematic illustration of a Krueger flap in an extended position
in accordance with the prior art.
Figure 2A is a partially schematic illustration of an aircraft system with a leading
edge device in a first extended position in accordance with an embodiment of the invention.
Figure 2B is a partially schematic illustration of the aircraft system with the leading
edge device shown in Figure 2A in a second extended position in accordance with an
embodiment of the invention.
Figure 2C is a partially schematic illustration of the aircraft system with the leading
edge device shown in Figure 2A in a third extended position in accordance with an
embodiment of the invention.
Figure 2D is a partially schematic illustration of the aircraft system with the leading
edge device shown in Figure 2A in a retracted position in accordance with a further
embodiment of the invention.
Figure 3A is a partially schematic illustration of a first leading edge device that
can be removed and replaced in accordance with another embodiment of the invention.
Figure 3B is a partially schematic illustration of the first leading edge device,
shown in Figure 3A in the retracted position in accordance with another embodiment
of the invention.
Figure 4 is a partially schematic illustration of an aircraft that includes a leading
edge device in accordance with embodiments of the invention.
DETAILED DESCRIPTION
[0010] The present disclosure describes aircraft leading edge apparatuses and corresponding
methods. Several specific details of the invention are set forth in the following
description and in Figures 2-4 to provide a thorough understanding of certain embodiments
of the invention. One skilled in the art, however, will understand that the present
invention may have additional embodiments and that other embodiments of the invention
may be practiced without several of the specific features described below.
[0011] Figure 2A is a partially schematic illustration of an embodiment of an aircraft system
200 that includes a n airfoil 210 and a leading edge device 220 (e.g., a leading edge
flap or a Krueger flap). The airfoil 210 can include a leading edge 212 and a lower
surface 215. The leading edge device 220 can include linkage 230 coupled to a flow
surface 222, which can be curved or generally flat. The linkage 230 guides the motion
of the flow surface 222 as the leading edge device 220 extends and retracts.
[0012] The flow surface 222 can have a trailing edge 225 and can include multiple sections
2 23, which can be movable relative to each other. In an embodiment shown in Figure
2A, the flow surface 222 includes two sections 223, shown as a first section 223a
and a second section 223b. In other embodiments, the flow surface 222 can have more
or fewer sections 223. The sections 223 can be arranged to form a continuous surface
(e.g., a surface without any breaks or gaps) or a noncontinuous surface (e.g., a surface
with gaps or breaks), as shown in Figure 2A. In Figure 2A, the leading edge device
220 is shown in a first extended position with the flow surface 222 positioned to
form a downward and/or forward extension of the leading edge 212. When the leading
edge device 220 is in the first extended position, the trailing edge 225 of the flow
surface 222 is spaced apart from the leading edge 212 of the airfoil 210 by a first
distance 240a. The size of the first distance 240a can be controlled by the linkage
230.
[0013] The linkage 230 can include a drive arm 231 having a fixed pin 235, and a scissors
link 232 having a slot 237 in which the pin 235 is received. The slot 237 can be elongated
so as to extend from a first side 238a to a second side 238b, allowing the scissors
link 232 to translate relative to the pin 235 and the drive arm 231. One end of the
drive arm 231 can be coupled to a first actuator 260 to rotate relative to the airfoil
210 about axis A. An opposite end of the drive arm 231 can be coupled to the flow
surface 222 via connecting links 239. The scissors link 232 can also be coupled to
the flow surface 222 to control the motion of flow surface 222 relative to the airfoil
210.
[0014] In a further aspect of this embodiment, the scissors link 232 can also be configured
to actively move the flow surface 222 (e.g., to change the position and/or orientation
of the flow surface 222) relative to the drive arm 231. Accordingly, the scissors
link 232 can include a second actuator 270 operatively coupled to the pin 235 (which
is attached to the drive arm 231). As the second actuator 270 extends from the position
shown in Figure 2A, it moves the scissors link 2 32 to the left relative to the pin
2 35, changing the position of the pin 235 within the slot 237, changing the pivot
point of the scissors link 232, and changing the position of the flow surface 222.
[0015] Figure 2B illustrates the airfoil after the second actuator 270 has extended and
moved the leading edge device 220 from the first extended position (shown in Figure
2A) to a second extended position (shown in Figure 2B). The second actuator 270 has
moved the scissors link 232 to the left, so that the pin 235 (which was located on
the first side 238a of the slot 237) is now located on the second side 238b of the
slot 237. Correspondingly, the flow surface 222 has moved so that it still forms a
downward and/or forward extension of the leading edge, but now creates a second distance
240b between the trailing edge 225 of the flow surface 222 and the leading edge 212
of the airfoil 210. The second distance 240b is smaller than the first distance 240a
shown in Figure 2A and in some embodiments can have a zero value (as shown in Figure
2B).
[0016] The second actuator 270 can position the flow surface 222 among the first extended
position, shown in Figure 2A, the second extended position, shown in Figure 2B, and
a third extended position, shown in Figure 2C. For example, in Figure 2C the second
actuator 270 has moved the scissors link 232 so that the pin 235 is located in the
slot 237 away from and between the first and second sides 238a, 238b. Correspondingly,
the flow surface 222 has moved to the third extended position between the first and
second extended positions. When the leading edge device 220 is in the third extended
position, the trailing edge 225 of the flow surface 222 is spaced apart from the leading
edge 212 of the airfoil 210 by a third distance 240c. The third distance 240c is smaller
than the first distance 240a associated with the first extended position, shown in
Figure 2A, and larger than the second distance 240b (or a zero value) associated with
the second extended position, shown in Figure 2B.
[0017] Figure 2D illustrates the leading edge device 220 after the first actuator 260 has
moved it from the first extended position (shown in Figure 2A) to the retracted position.
As the first actuator 260 moves the leading edge device 220 between these positions,
the pin 235 can be held against the first side 238a of the slot 237 by the second
actuator 270. For example, as the first actuator 260 moves the leading edge device
220 from the first extended position (shown in Figure 2A) to the retracted position
(shown in Figure 2D), the drive arm 231 rotates in a clockwise direction about axis
A and moves the flow surface 222. As the drive arm 231 rotates, the scissors link
232, which is pivotally coupled to the drive arm 231, also moves, moving the flow
surface 222 relative to the drive arm 231. These actions can cause the flow surface
222 to move aft relative to the leading edge 212 of the airfoil 210 and to rotate
until it reaches the retracted position.
[0018] When in the retracted position, the flow surface 222 is positioned generally behind
the leading edge 212 of the airfoil 210 to form a portion of the lower surface 215
of the airfoil 210. In an embodiment shown in Figure 2D, the first section 223a of
the flow surface 222 forms a portion of the lower surface 215 of the airfoil 210,
while the second section 223b is recessed into the airfoil 210. In other embodiments,
the leading edge device 220 can have other arrangements with different portions of
the flow surface 222 or sections 223 of the flow surface 222 forming portions of the
lower surface 215 of the airfoil 210.
[0019] The leading edge device 220 can be moved from the retracted position (Figure 2D)
to the first extended position (Figure 2A) by reversing the retraction process discussed
above with reference to Figures 2A and 2D. For example, the first actuator 260 can
move the leading edge device 220 from the retracted position to the first extended
position by rotating the drive arm 231 in a counterclockwise direction about axis
A. As the drive arm 231 rotates, the scissors link 232 also moves, moving the flow
surface 222 relative to the drive arm 231. Correspondingly, the flow surface 222 can
rotate and move generally forward relative to the leading edge 212 to the first extended
position. In other embodiments, the leading edge device 220 can have multiple first
extended positions, for example, when the first actuator 260 moves the drive arm 231
to an extended position different than shown in Figure 2A, but the second actuator
holds the pin 235 against the first side 238a of the slot 237.
[0020] In certain embodiments, the first and second actuators 260, 270 can operate in a
sequential manner. For example, when the flow surface 222 moves from the retracted
position, shown in Figure 2D, to the second extended position, shown in Figure 2B,
the first actuator 260 can move the leading edge device 220 from the retracted position
to the first extended position shown in Figure 2A. The second actuator 270 can then
move the leading edge device 220 from the first extended position to the second extended
position. In other embodiments, the first and second actuators 260, 270 can operate
simultaneously to move the flow surface 222 from the retracted position to the second
extended position, to move the flow surface 222 from the second extended position
to the retracted position, or both. For example, when the flow surface 222 moves from
the retracted position (Figure 2D) to the second extended position (Figure 2B) the
two actuators can move together to position the flow surface 222 directly from the
retracted position to the second extended position.
[0021] In other embodiments, the aircraft system can include other arrangements of linkages
and actuators, including other arrangements of links, pins, and slots. For example,
in certain embodiments, the second actuator 270 can be coupled between the airfoil
210 and the leading edge device 220. The actuators 260, 270 can include any of several
types, e.g., pneumatic, hydraulic, and/or electric. Each actuator can have a single
drive element (e.g., a single piston and cylinder) as shown in Figures 2A-2D, or multiple
elements.
[0022] One feature of embodiments of aircraft systems described above is that they can be
arranged to deploy the leading edge device to multiple extended positions with a relatively
simple linkage arrangement. One advantage of this feature is that the aircraft systems
can be made lighter than systems requiring complex linkages, saving weight, and thereby
increasing aircraft performance and reducing operating costs. Another advantage is
that less complex linkages can be more reliable than complex linkages, thereby increasing
the reliability of the aircraft system.
[0023] Another feature of embodiments of aircraft systems described above is that the second
actuator can allow the flow surface of the leading device to be precisely positioned
to an aerodynamically desirable position without complex linkages. By precisely positioning
the leading edge device at an aerodynamically desirable location, aircraft performance
can be increased. An advantage of this feature is that it can increase aerodynamic
performance characteristics without significantly increasing aircraft weight or reducing
the reliability of the aircraft system.
[0024] Embodiments of the aircraft system d escribed above can be installed on airfoils
configured to be operatively coupled to other, different types of leading edge devices,
e.g., in a retrofit operation. For example, Figure 3A is partially schematic illustration
of a first leading edge device 380 coupled to an airfoil 210, generally similar to
that shown in Figure 2A. The first leading edge device 380 can be similar to the Krueger
flap discussed with reference to Figure 1A and can have a first position (e.g., an
extended position), shown in Figure 3A, and a second position (e.g., a retracted position),
discussed in further detail below with reference to Figure 3B. The first leading edge
device 380 can be attached to the airfoil 210 at one or more attachment points 217
(two attachment points 217 are shown in Figure 3A as first attachment point 217a and
second attachment point 217b). The first leading edge device 380 can be operatively
coupled to the first actuator 260 at the first attachment point 217a. In certain embodiments,
the first leading edge device 380 can be coupled directly to the first actuator 260,
while in other embodiments the first leading edge device 380 can be coupled to the
first actuator 260 by other linkages (e.g., a torque tube).
[0025] The first leading edge device 380 can be removed and replaced by a second leading
edge device 320 having characteristics generally similar to those of the leading edge
device 220 described above with reference to Figures 2A-2D. The second leading edge
device 320 can have more extended positions than the first leading edge device 380
(e.g., the second leading edge device 320 can have at least a retracted position,
first extended position, and second extended position). The first leading edge device
380 can be disconnected from the attachment points 217, decoupled from the first actuator
260, and removed from the airfoil 210. The second leading edge device 320 can then
be installed using the same attachment points 217. Additionally, the second leading
edge device 320 can be operatively coupled to the same or a different first actuator
260 (e.g., a different first actuator 260 can be installed with the second leading
edge device 320). In certain embodiments, the second leading edge device 320 can share
common elements or components (e.g., links and pins) with the first leading edge device
380. For example, the first and second leading edge devices 380, 320 can have the
same crescent link 342 and support link 343.
[0026] In certain embodiments, the first and second leading edge devices 380, 320 can have
similar flow surfaces placed in similar positions relative to the airfoil 210. For
example, the second flow surface 222 of the second leading edge device 320 can be
at least approximately identical to a first flow surface 382 of the first leading
edge device 380 (e.g., the first and second flow surfaces 222, 382 can be the same
or only nominally different). Additionally, the second leading edge device 320 can
have a first extended position that places the second flow surface 222 in a position
relative to the airfoil 210 that is at least approximately identical to that of the
first flow surface 382 when the first leading edge device 380 is in the first position
(shown in Figure 3A). Similarly, the second leading edge device 320 can have a retracted
position that places the second flow surface 222 in a position relative to the airfoil
210 that is at least approximately identical to the position of the first flow surface
382 when the first leading edge device 380 is in the second position (shown in Figure
3B).
[0027] In other embodiments, although the airfoil 210 is configured to be operatively coupled
to the first leading edge device 380, the first leading edge device 380 need not be
installed on the airfoil 210. Instead, the second leading edge device 320 can be installed
without first installing the first leading edge device 380. For example, an aircraft
that was originally designed with the first leading edge device 380, if still in production,
can have the second leading edge device 320 installed during production rather than
in a retrofit operation.
[0028] One feature of embodiments of aircraft systems described above is that they can be
installed on an airfoil configured to be coupled to a different leading edge device
with little structural modification, while providing new flow surfaces, additional
positions, and/or positions that yield improved performance characteristics. For example,
the new leading edge device can share common components with the original leading
edge device installed on the airfoil, or for which the airfoil was originally designed.
The new leading edge device can also share common attachment points with the original
leading edge device. An advantage of these features is that they can reduce the cost
of installing the new leading edge device, whether during production or during a retrofit
operation. Another advantage of these features is that an operator can use many of
the same spare parts that were designed for the original leading edge device on the
new leading edge device, thereby reducing maintenance and inventory costs. Yet another
advantage is that the amount of testing required for verification and certification
of the new leading edge device can be reduced in some cases where the new and original
leading edge devices share common flow surfaces and positions, thereby reducing verification
and certification costs.
[0029] Figure 4 is a partially schematic illustration of an aircraft system 400 that includes
an aircraft 450 with an airfoil 410 (e.g., a wing) having a leading edge device 420
in accordance with embodiments of the invention described above. In Figure 4, two
leading edge devices 420 are shown on each wing. In other embodiments, the leading
edge device(s) 420 can be installed on other portions (e.g., airfoils) of the aircraft
450.
[0030] From the foregoing, it will be appreciated that specific embodiments of the invention
have been described herein for purposes of illustration, but that various modifications
may be made without deviating from the spirit and scope of the invention. For example,
features described above in the context of particular embodiments can be combined
or eliminated in other embodiments. Accordingly, the invention is not limited except
as by the appended claims.
1. An aircraft system, comprising:
an airfoil;
a leading edge device having a flow surface;
a first actuator to move the first link relative to the airfoil; and
a second actuator to move at least one link relative to the other.
2. The aircraft system according to claim 1, comprising:
a first link coupled between the airfoil and the flow surface; and
a second link coupled to the first link;
said first actuator being coupled to the first link; and
said second actuator being coupled tot he second link.
3. The system according to claim 1 or 2, wherein the airfoil has a leading edge and a
lower surface, the leading edge device is coupled to the airfoil, the flow surface
having a trailing edge, the leading edge device being movable among:
a retracted position wherein the flow surface is positioned generally behind the leading
edge of the airfoil to form a portion of the lower surface of the airfoil;
at least one first extended position wherein at least a portion of the flow surface
is positioned to form an extension of the leading edge with a first distance between
the trailing edge of the flow surface and the leading edge of the airfoil; and
a second extended position wherein at least a portion of the flow surface is positioned
to form an extension of the leading edge with no distance or a second distance between
the trailing edge of the flow surface and the leading edge of the airfoil, the second
distance being smaller than the first distance;
said first actuator being operatively coupled to the leading edge device to move the
leading edge device between the retracted position and the at least one first extended
position; and
said second actuator being operatively coupled to the leading edge device to move
the leading edge device between the at least one first extended position and the second
extended position.
4. The system of claim 1, 2 or 3, further comprising an aircraft, and wherein the airfoil
is coupled to the aircraft.
5. The system of any of claims 1-4, wherein the leading edge device includes a Krueger
flap.
6. The system of any of claims 1-5, wherein the first actuator includes a pneumatic actuator.
7. The system of any of claims 1-6, wherein the second actuator includes an electric
actuator.
8. The system of any of claims 1-7, wherein the first and second actuators are configured
to operate in a sequential manner.
9. The system of any of claims 1-8, wherein the first and second actuators are configured
to operate simultaneously to move the leading edge device from the retracted position
to the second extended position, to move the leading edge device from the second extended
position to the retracted position, or both.
10. The system of any of claims 1-9, wherein the flow surface includes multiple sections
movable relative to each other.
11. The system of any of claims 1-10, wherein:
the leading edge device is movable to a third extended position between the first
and the second extended positions; and wherein
the second actuator is configured to move the leading edge device among the at least
one first extended position, the second extended position, and the third extended
position.
12. The system of any of claims 1-11, wherein:
the airfoil has multiple attachment points, the airfoil being configured to be operatively
coupled to a first leading edge device at the multiple attachment points, the first
leading edge device having a first flow surface and a first number of extended positions;
and
a second leading edge device is coupled to the airfoil at the attachment points, the
second leading edge device having a second flow surface and a second number of extended
positions, the second number of extended positions being greater than the first number
of extended positions.
13. The system of any of claims 1-12, wherein the second leading edge device includes
at least one of a link, a pin, and at least a portion of a flow surface that is at
least approximately identical to a corresponding link, pin, and flow surface portion
of the first leading edge device.
14. The system of claim 12 or 13, wherein the second leading edge device is movable among:
a retracted position wherein the second flow surface is positioned generally behind
the leading edge of the airfoil to form a portion of the lower surface of the airfoil;
at least one first extended position wherein at least a portion of the second flow
surface is positioned to form an extension of the leading edge with a first distance
between the trailing edge of the second flow surface and the leading edge of the airfoil;
and
a second extended position wherein at least a portion of the second flow surface is
positioned to form an extension of the leading edge with no distance or a second distance
between the trailing edge of the second flow surface and the leading edge of the airfoil,
the second distance being smaller than the first distance; and wherein the system
further comprises:
a first actuator operatively coupled to the second leading edge device to move the
second leading edge device surface between the retracted position and the at least
one first extended position;
a second actuator operatively coupled to the second leading edge device to move the
second leading edge device between the at least one first extended position and the
second extended position; and
the first leading edge device; wherein:
the first flow surface of the first leading edge device is at least approximately
identical to the second flow surface of the second leading edge device; and wherein
the first leading edge device, when operatively coupled to the airfoil, is movable
between:
a first position that places the first flow surface in a position relative to the
airfoil that is at least approximately identical to the position of the second flow
surface when the second leading edge device is in the first extended position; and
a second position that places the first flow surface in a position relative to the
airfoil that is at least approximately identical to the position of the second flow
surface when the second leading edge device is in the retracted position.
15. An aircraft system according to any of claims 1-14, wherein:
the airfoil has a leading edge and a lower surface;
the leading edge device is coupled to the airfoil;
a drive arm is coupled to the flow surface and configured to rotate the flow surface
generally forward and downward from the retracted position, the drive arm having a
pin;
a scissors link has a slot in which the pin is received to pivotally couple the drive
arm and the scissors link and to permit the scissors link to translate relative to
the drive arm, the scissors link being coupled to the flow surface to move the flow
surface relative to the drive arm; and wherein the leading edge device is movable
among:
a retracted position wherein the flow surface is positioned generally behind the leading
edge of the airfoil to form a portion of the lower surface of the airfoil;
at least one first extended position wherein at least a portion of the flow surface
is positioned to form an extension of the leading edge with a first distance between
the trailing edge of the flow surface and the leading edge of the airfoil; and
a second extended position wherein at least a portion of the flow surface is positioned
to form an extension of the leading edge with no distance or a second distance between
the trailing edge of the flow surface and the leading edge of the airfoil, the second
distance being smaller than the first distance;
a first actuator operatively coupled to the drive arm to move the leading edge device
between the retracted position and the at least one first extended position; and
a second actuator operatively coupled to the scissors link and the drive arm to translate
the scissors link and move the leading edge device between the at least one first
extended position and the second extended position.
16. The system of claim 15 wherein the scissors link is coupled to the flow surface to
change at least one of a position and an orientation of the flow surface relative
to the drive arm.
17. An aircraft system according to any of claims 1-16, comprising:
leading edge extension means for extending the leading edge, the leading edge extension
means having a flow surface with a trailing edge, the leading edge extension means
being movable among:
a retracted position wherein the flow surface is positioned generally behind the leading
edge of the airfoil to form a portion of the lower surface of the airfoil;
at least one first extended position wherein at least a portion of the flow surface
is positioned to form an extension of the leading edge with a first distance between
the trailing edge of the flow surface and the leading edge of the airfoil; and
a second extended position wherein at least a portion of the flow surface is positioned
to form an extension of the leading edge with no distance or a second distance between
the trailing edge of the flow surface and the leading edge of the airfoil, the second
distance being smaller than the first distance;
first actuator means for moving the leading edge extension means between the retracted
position and the at least one first extended position; and
second actuator means for moving the leading edge extension means between the at least
one first extended position and the second extended position.
18. The system of claim 17, wherein:
the leading edge extension means is movable to a third extended position between the
first and second extended positions; and wherein
the second actuator means is configured to move the leading edge extension means among
the at least one first extended position, the second extended position, and the third
extended position.
19. A method for making an aircraft system, comprising:
providing an airfoil;
installing a leading edge device having a flow surface on the airfoil, the leading
edge device having a first link coupled between the airfoil and the flow surface and
a second link coupled to the first link;
operatively coupling a first actuator to the first link to move the first link relative
to the airfoil; and
operatively coupling a second actuator between the first and second links to move
at least one link relative to the other.
20. A method for making an aircraft system, comprising:
providing an airfoil having a leading edge and a lower surface;
installing the leading edge device on the airfoil, the leading edge device including
a flow surface and a trailing edge, the leading edge device being movable among:
a retracted position wherein the flow surface is positioned generally behind the leading
edge of the airfoil to form a portion of the lower surface of the airfoil;
at least one first extended position wherein at least a portion of the flow surface
is positioned to form an extension of the leading edge with a first distance between
the trailing edge of the flow surface and the leading edge of the airfoil; and
a second extended position wherein at least a portion of the flow surface is positioned
to form an extension of the leading edge with no distance or a second distance between
the trailing edge of the flow surface and the leading edge of the airfoil, the second
distance being smaller than the first distance;
operatively coupling a first actuator to the leading edge device to move the leading
edge device between the retracted position and the at least one first extended position;
and
operatively coupling a second actuator to the leading edge device to move the leading
edge device between the at least one first extended position and the second extended
position.
21. A method for making an aircraft system, comprising:
providing an airfoil having a leading edge, a lower surface, and multiple attachment
points, the airfoil being operatively couplable to a first leading edge device at
the multiple attachment points, the first leading edge device having a first number
of extended positions; and
operatively coupling a second leading edge device to the airfoil via the attachment
points, the second leading edge device having a second number of extended positions,
the second number of extended positions being greater than the first number of extended
positions.
22. The method of claim 19, 20 or 21, wherein the system according to any of claims 1-18
is used.